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利用分子内和分子间相互作用的协同作用控制超分子聚合物的可加工性和稳定性

Controlling the Processability and Stability of Supramolecular Polymers Using the Interplay of Intra- and Intermolecular Interactions.

作者信息

van der Tol Joost J B, Vantomme Ghislaine, Palmans Anja R A, Meijer E W

机构信息

Institute for Complex Molecular Systems and Laboratory of Macromolecular and Organic Chemistry, Eindhoven University of Technology, P.O. Box 513, 5600 MB Eindhoven, The Netherlands.

出版信息

Macromolecules. 2022 Aug 9;55(15):6820-6829. doi: 10.1021/acs.macromol.2c00976. Epub 2022 Jul 27.

Abstract

Polymer networks crosslinked via non-covalent interactions afford interesting materials for a wide range of applications due to their self-healing capability, recyclability, and tunable material properties. However, when strong non-covalent binding motifs in combination with high crosslink density are used, processing of the materials becomes troublesome because of high viscosities and the formation of insoluble gels. Here, we present an approach to control the processability of grafted polymers containing strong non-covalent interactions by balancing the interplay of intra- and intermolecular hydrogen bonding. A library of copolymers with different degrees of polymerization and content of protected ureido-pyrimidinone-urea (UPy-urea) grafts was prepared. Photo-deprotection in a good solvent like tetrahydrofuran (THF) at low concentrations (≤1 mg mL) created intramolecularly assembled nanoparticles. Remarkably, the intrinsic viscosity of these nanoparticle solutions was an order of magnitude lower compared to solutions of the intermolecularly assembled analogues, highlighting the crucial role of intra- versus intermolecular interactions. Due to the strong hydrogen bonds between UPy dimers, the intramolecularly assembled structures were kinetically trapped. As a result, the polymer nanoparticles were readily processed into a bulk material, without causing major changes in the morphology as verified by atomic force microscopy. Subsequent intermolecular crosslinking of the nanoparticle film, by heating to temperatures where the hydrogen-bond exchange becomes fast, resulted in a crosslinked network. The reversibility of the hereby obtained polymer networks was shown by retrieving the intramolecularly assembled nanoparticles via redissolution and sonication of the intermolecularly crosslinked film in THF with a small amount of acid. Our results highlight that the stability and processability of highly supramolecularly crosslinked polymers can be controlled both in solution and in bulk by using the interplay of intra- and intermolecular non-covalent interactions in grafted polymers.

摘要

通过非共价相互作用交联的聚合物网络,由于其自修复能力、可回收性和可调节的材料性能,为广泛的应用提供了有趣的材料。然而,当使用具有高交联密度的强非共价结合基序时,由于高粘度和不溶性凝胶的形成,材料的加工变得麻烦。在这里,我们提出了一种通过平衡分子内和分子间氢键的相互作用来控制含有强非共价相互作用的接枝聚合物的可加工性的方法。制备了具有不同聚合度和受保护的脲基嘧啶酮-脲(UPy-脲)接枝含量的共聚物文库。在低浓度(≤1 mg/mL)的良好溶剂如四氢呋喃(THF)中进行光脱保护,形成分子内组装的纳米颗粒。值得注意的是,与分子间组装类似物的溶液相比,这些纳米颗粒溶液的特性粘度低一个数量级,突出了分子内与分子间相互作用的关键作用。由于UPy二聚体之间的强氢键,分子内组装结构在动力学上被捕获。结果,聚合物纳米颗粒很容易加工成块状材料,原子力显微镜验证表明其形态没有发生重大变化。通过加热到氢键交换变得快速的温度,纳米颗粒膜随后进行分子间交联,形成交联网络。通过在含有少量酸的THF中对分子间交联膜进行再溶解和超声处理,回收分子内组装的纳米颗粒,证明了由此获得的聚合物网络的可逆性。我们的结果突出表明,通过利用接枝聚合物中分子内和分子间非共价相互作用的相互作用,可以在溶液和本体中控制高度超分子交联聚合物的稳定性和可加工性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f4f4/9367003/b19845605b81/ma2c00976_0002.jpg

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